Multilingual Detection of Check-Worthy Claims using World Languages and Adapter Fusion

January 13, 2023 ยท Declared Dead ยท ๐Ÿ› European Conference on Information Retrieval

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Authors Ipek Baris Schlicht, Lucie Flek, Paolo Rosso arXiv ID 2301.05494 Category cs.CL: Computation & Language Cross-listed cs.IR Citations 8 Venue European Conference on Information Retrieval Last Checked 5 months ago
Abstract
Check-worthiness detection is the task of identifying claims, worthy to be investigated by fact-checkers. Resource scarcity for non-world languages and model learning costs remain major challenges for the creation of models supporting multilingual check-worthiness detection. This paper proposes cross-training adapters on a subset of world languages, combined by adapter fusion, to detect claims emerging globally in multiple languages. (1) With a vast number of annotators available for world languages and the storage-efficient adapter models, this approach is more cost efficient. Models can be updated more frequently and thus stay up-to-date. (2) Adapter fusion provides insights and allows for interpretation regarding the influence of each adapter model on a particular language. The proposed solution often outperformed the top multilingual approaches in our benchmark tasks.
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